Abstract
Coat-stripped spores suspended in hypertonic solutions and supplied with two essential cations can be converted into viable protoplasts by lysozyme digestion of both cortex and germ cell wall. Calcium ions are necessary to prevent membrane rupture, and magnesium ions are necessary for changes indicative of hydration of the core, particularily the nuclear mass. Since remnant spore coat covered such protoplasts of Bacillus subtilis and the germ cell wall of B. cereus spores is not lysozyme digestible, coatless spores of B. megaterium KM were more useful for these studies. Lysozyme digestion in cation-free environment produced a peculiar semi-refractile spore core free of a cortex but prone to rapid hydration and lytic changes on the addition of cations. Strontium could replace Ca(2+) but Mn(2+) could not replace Mg(2+) in these digestions. When added to the spores, dipicolinic acid and other chelates appeared to compete with the membrane for the calcium needed for stabilization during lysozyme conversion to protoplasts. It is argued that calcium could function to stabilize the inner membrane anionic groups over the anhydrous dipicolinic acid-containing core of resting spores.
MeSH Terms
Bacillus megaterium/cytology,drug effects
Bacteriological Techniques
Buffers
Calcium/pharmacology
Cell Membrane
Cell Wall
Centrifugation
Chelating Agents/pharmacology
Culture Media
Detergents
Hypertonic Solutions
Manganese/pharmacology
Microscopy, Electron
Microscopy, Phase-Contrast
Muramidase/metabolism
Picolinic Acids/pharmacology
Protoplasts/drug effects,growth & development
Sodium
Spectrophotometry
Spores/cytology,drug effects
Strontium/pharmacology
Sucrose
Sulfates
Chemicals
Buffers
Chelating Agents
Culture Media
Detergents
Hypertonic Solutions
Picolinic Acids
Sulfates
Manganese
Sucrose
Sodium
Muramidase
Calcium
Strontium
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Fitz-James P C
References (15)
15 references, click to expand
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